Title :
A 2.4-GHz MEMS-Based PLL-Free Multi-Channel Receiver With Channel Filtering at RF
Author :
Heragu, A. ; Ruffieux, David ; Enz, C.C.
Author_Institution :
CSEM SA, Neuchatel, Switzerland
Abstract :
A Bulk Acoustic Wave (BAW) resonator based 2.4-GHz low power receiver is presented in this work. The intrinsic high quality factor (Q) of the BAW resonator (around 400 at 2.4-GHz) is exploited to provide channel selection at RF and in the frequency synthesis. A novel way of addressing multiple channels (arbitrary frequency) using integer dividers and a BAW digitally controlled oscillator (DCO) and thus avoiding the need for a PLL is proposed in this work. To the best of our knowledge, this work is the first one to report a multi-channel (arbitrary frequency) receiver whose frequency synthesis depends solely on the low phase noise BAW DCO and does not include a PLL. A BAW pseudo-lattice with frequency and bandwidth tuning is proposed which significantly improves the rejection of unwanted signals in the channel filter. A quadrature sub-sampling mixer is used to down-convert the selected channel to baseband. The receiver is designed and integrated in a 0.18- μm CMOS process. With Q-boosting, the channel filter provides bandwidth down-to 1-MHz. For a BFSK modulated signal, the receiver exhibits a sensitivity of -78 mathchar "702D dBm at a rate of 268-kbps for a BER of 10-3 . The total power consumption of the receiver is 5.94-mA from a 1.8-V power supply.
Keywords :
bulk acoustic wave devices; micromechanical devices; phase locked loops; BAW digitally controlled oscillator; BAW pseudo lattice; BAW resonator; BFSK modulated signal; CMOS process; MEMS based PLL free multichannel receiver; Q boosting; bandwidth tuning; bulk acoustic wave; channel filtering; channel selection; current 5.94 mA; frequency 2.4 GHz; frequency synthesis; intrinsic high quality factor; low phase noise BAW DCO; low power receiver; quadrature subsampling mixer; voltage 1.8 V; Bandwidth; Impedance; Lattices; Oscillators; Receivers; Resonant frequency; Tuning; Current reuse; FBAR resonator; FIR; IIR; MEMS; PLL-free; lattice; sub-sampling; super-high IF; switched capacitor circuits; wireless body area networks (WBAN);
Journal_Title :
Solid-State Circuits, IEEE Journal of
DOI :
10.1109/JSSC.2013.2253404